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LED revolution: fundamentals and prospects for UV disinfection applications

机译:LED革命:紫外线消毒应用的基础和前景

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The UV-light emitting diode (LED) has been attracting significant attention as a new UV source that can replace conventional mercury gas-filled lamps in water disinfection applications. However, the UV-LED remains a relatively new addition to the water treatment toolbox. The current lack of fundamental understanding risks underutilizing uniquely advantageous features of the UV-LED due to unguided design and non-optimized disinfection practices. Our review presents the necessary fundamental knowledge required for the successful implementation of UV-LEDs, including the mechanism of light generation, LED chip fabrication, package design, and essential properties of UV-LEDs. We introduce distinct advantages, such as wavelength tuning, control of radiation patterns, and array design, while emphasizing the significant differences between LED and mercury lamp technologies required to achieve successful technology transfer. Previous studies investigated the design of UV-LED disinfection systems; however, little consensus has yet emerged regarding the integration of LEDs into flow-through reactors. While UV-LED disinfection systems will undisputedly mature in the near future, environmental engineers face a number of urgent research needs in this area including heat sink design, radiation pattern and array design optimization for uniform UV dose delivery, targeted pathogen-wavelength considerations, improved light extraction, and component monitoring systems.
机译:紫外线发光二极管(LED)作为一种新型的紫外线源已经引起了广泛的关注,该新型紫外线源可以在水消毒应用中替代传统的充满汞的充气灯。但是,UV-LED仍然是水处理工具箱中一个相对较新的功能。由于缺乏指导性的设计和未优化的消毒方法,当前缺乏基本的了解可能会无法充分利用UV-LED的独特优势。我们的综述提供了成功实施UV-LED所需的必要基础知识,包括光产生的机理,LED芯片制造,封装设计以及UV-LED的基本特性。我们介绍了独特的优势,例如波长调谐,辐射图控制和阵列设计,同时强调了成功实现技术转让所需的LED和汞灯技术之间的显着差异。先前的研究调查了UV-LED消毒系统的设计。然而,关于将LED集成到流通式反应器中,尚未达成共识。尽管UV-LED消毒系统无疑会在不久的将来成熟,但环境工程师在该领域面临着许多紧迫的研究需求,包括散热器设计,辐射模式和阵列设计优化以实现统一的紫外线剂量输送,针对病原体波长的考虑因素得到了改善。光提取和组件监控系统。

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    Department of Chemical and Environmental Engineering, and Nanosystems Engineering Research Center for Nanotechnology-Enabled Water Treatment (NEWT), Yale University, 17 Hillhouse Ave, New Haven, Connecticut, 06511, USA,Beijing Key Laboratory of Materials Utilization of Nonmetallic Minerals and Solid Wastes, National Laboratory of Mineral Materials, School of Materials Science and Technology, China University of Geosciences, Beijing, 100083, China;

    Department of Chemical and Environmental Engineering, and Nanosystems Engineering Research Center for Nanotechnology-Enabled Water Treatment (NEWT), Yale University, 17 Hillhouse Ave, New Haven, Connecticut, 06511, USA;

    Department of Chemical and Environmental Engineering, and Nanosystems Engineering Research Center for Nanotechnology-Enabled Water Treatment (NEWT), Yale University, 17 Hillhouse Ave, New Haven, Connecticut, 06511, USA;

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